Literature DB >> 18441032

Side-chain dynamics are critical for water permeation through aquaporin-1.

Nikolai Smolin1, Bin Li, David A C Beck, Valerie Daggett.   

Abstract

Molecular dynamics simulations of aquaporin-1 embedded in a solvated lipid bilayer were carried out to investigate the mechanism of water permeation. The 2.2 A resolution crystal structure of the bovine protein was used for five independent trajectories. During the equilibration and preparatory steps in which the protein was held fixed, water molecules inside the water channel adopted the same positions as observed in the crystal structure but they did not pass through the channel, suggesting that the dynamic motion of the protein is critical for water permeation. When the protein atoms were allowed to move, the side chains of the two asparagines in the two conserved Asn-Pro-Ala motifs near the center of the channel formed hydrogen bonds with water and helped water molecules move through the channel by actively aligning them for transport. The main-chain oxygen atoms, which were exposed to the pore surface in the crystal structure, also contributed to water transfer. Besides the constriction region observed in the crystal structure (Arg(197), Phe(58), His(182), and Cys(191)), we found that His(76) and Val(155) act as a valve by dynamically blocking water permeation and helping control flow.

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Year:  2008        PMID: 18441032      PMCID: PMC2479601          DOI: 10.1529/biophysj.107.125187

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  41 in total

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Authors:  H M Berman; J Westbrook; Z Feng; G Gilliland; T N Bhat; H Weissig; I N Shindyalov; P E Bourne
Journal:  Nucleic Acids Res       Date:  2000-01-01       Impact factor: 16.971

Review 2.  Cellular and molecular biology of the aquaporin water channels.

Authors:  M Borgnia; S Nielsen; A Engel; P Agre
Journal:  Annu Rev Biochem       Date:  1999       Impact factor: 23.643

3.  Comparative simulations of aquaporin family: AQP1, AQPZ, AQP0 and GlpF.

Authors:  Masanori Hashido; Mitsunori Ikeguchi; Akinori Kidera
Journal:  FEBS Lett       Date:  2005-10-24       Impact factor: 4.124

Review 4.  What makes an aquaporin a glycerol channel? A comparative study of AqpZ and GlpF.

Authors:  Yi Wang; Klaus Schulten; Emad Tajkhorshid
Journal:  Structure       Date:  2005-08       Impact factor: 5.006

5.  The three-dimensional structure of aquaporin-1.

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Journal:  Nature       Date:  1997-06-05       Impact factor: 49.962

6.  A point mutation at cysteine 189 blocks the water permeability of rat kidney water channel CHIP28k.

Authors:  R Zhang; A N van Hoek; J Biwersi; A S Verkman
Journal:  Biochemistry       Date:  1993-03-30       Impact factor: 3.162

7.  The structure of the aquaporin-1 water channel: a comparison between cryo-electron microscopy and X-ray crystallography.

Authors:  Bert L de Groot; Andreas Engel; Helmut Grubmüller
Journal:  J Mol Biol       Date:  2003-01-17       Impact factor: 5.469

8.  Reconstitution of functional water channels in liposomes containing purified red cell CHIP28 protein.

Authors:  M L Zeidel; S V Ambudkar; B L Smith; P Agre
Journal:  Biochemistry       Date:  1992-08-25       Impact factor: 3.162

9.  Tetrameric assembly of CHIP28 water channels in liposomes and cell membranes: a freeze-fracture study.

Authors:  J M Verbavatz; D Brown; I Sabolić; G Valenti; D A Ausiello; A N Van Hoek; T Ma; A S Verkman
Journal:  J Cell Biol       Date:  1993-11       Impact factor: 10.539

10.  The three-dimensional structure of human erythrocyte aquaporin CHIP.

Authors:  T Walz; B L Smith; P Agre; A Engel
Journal:  EMBO J       Date:  1994-07-01       Impact factor: 11.598

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  11 in total

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Authors:  Minhua Zhang; Shouqin Lü; Guowei Li; Zhilei Mao; Xin Yu; Weining Sun; Zhangcheng Tang; Mian Long; Weiai Su
Journal:  J Biol Chem       Date:  2010-10-06       Impact factor: 5.157

2.  Simulations of membrane-bound diglycosylated human prion protein reveal potential protective mechanisms against misfolding.

Authors:  Chin Jung Cheng; Heidi Koldsø; Marc W Van der Kamp; Birgit Schiøtt; Valerie Daggett
Journal:  J Neurochem       Date:  2017-05-22       Impact factor: 5.372

Review 3.  Biogenesis of bacterial inner-membrane proteins.

Authors:  Sandra J Facey; Andreas Kuhn
Journal:  Cell Mol Life Sci       Date:  2010-03-05       Impact factor: 9.261

4.  Mercury inhibits the L170C mutant of aquaporin Z by making waters clog the water channel.

Authors:  Yubo Zhang; Yubao Cui; L Y Chen
Journal:  Biophys Chem       Date:  2011-08-03       Impact factor: 2.352

Review 5.  Exploring transmembrane diffusion pathways with molecular dynamics.

Authors:  Yi Wang; Saher A Shaikh; Emad Tajkhorshid
Journal:  Physiology (Bethesda)       Date:  2010-06

6.  Characterization of cell-surface prion protein relative to its recombinant analogue: insights from molecular dynamics simulations of diglycosylated, membrane-bound human prion protein.

Authors:  Mari L DeMarco; Valerie Daggett
Journal:  J Neurochem       Date:  2009-02-23       Impact factor: 5.372

Review 7.  Water in Nanopores and Biological Channels: A Molecular Simulation Perspective.

Authors:  Charlotte I Lynch; Shanlin Rao; Mark S P Sansom
Journal:  Chem Rev       Date:  2020-08-25       Impact factor: 60.622

Review 8.  Water in protein hydration and ligand recognition.

Authors:  Manuela Maurer; Chris Oostenbrink
Journal:  J Mol Recognit       Date:  2019-08-27       Impact factor: 2.891

9.  Key diffusion mechanisms involved in regulating bidirectional water permeation across E. coli outer membrane lectin.

Authors:  Shivangi Sachdeva; Narendar Kolimi; Sanjana Anilkumar Nair; Thenmalarchelvi Rathinavelan
Journal:  Sci Rep       Date:  2016-06-20       Impact factor: 4.379

10.  Close association of water channel AQP1 with amyloid-beta deposition in Alzheimer disease brains.

Authors:  Tamako Misawa; Kunimasa Arima; Hidehiro Mizusawa; Jun-ichi Satoh
Journal:  Acta Neuropathol       Date:  2008-05-29       Impact factor: 17.088

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